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Data Analytics and Decision Support for Cybersecurity: Trends, Methodologies and Applications 1st ed. 2017 [Kietas viršelis]

  • Formatas: Hardback, 270 pages, aukštis x plotis: 235x155 mm, weight: 5561 g, 74 Illustrations, color; 31 Illustrations, black and white; XVI, 270 p. 105 illus., 74 illus. in color., 1 Hardback
  • Serija: Data Analytics
  • Išleidimo metai: 09-Aug-2017
  • Leidėjas: Springer International Publishing AG
  • ISBN-10: 3319594389
  • ISBN-13: 9783319594385
Kitos knygos pagal šią temą:
  • Formatas: Hardback, 270 pages, aukštis x plotis: 235x155 mm, weight: 5561 g, 74 Illustrations, color; 31 Illustrations, black and white; XVI, 270 p. 105 illus., 74 illus. in color., 1 Hardback
  • Serija: Data Analytics
  • Išleidimo metai: 09-Aug-2017
  • Leidėjas: Springer International Publishing AG
  • ISBN-10: 3319594389
  • ISBN-13: 9783319594385
Kitos knygos pagal šią temą:
The book illustrates the inter-relationship between several data management, analytics and decision support techniques and methods commonly adopted in Cybersecurity-oriented frameworks. The recent advent of Big Data paradigms and the use of data science methods, has resulted in a higher demand for effective data-driven models that support decision-making at a strategic level. This motivates the need for defining novel data analytics and decision support approaches in a myriad of real-life scenarios and problems, with Cybersecurity-related domains being no exception.This contributed volume comprises nine chapters, written by leading international researchers, covering a compilation of recent advances in Cybersecurity-related applications of data analytics and decision support approaches. In addition to theoretical studies and overviews of existing relevant literature, this book comprises a selection of application-oriented research contributions. The investigations undertaken acr

oss these chapters focus on diverse and critical Cybersecurity problems, such as Intrusion Detection, Insider Threats, Insider Threats, Collusion Detection, Run-Time Malware Detection, Intrusion Detection, E-Learning, Online Examinations, Cybersecurity noisy data removal, Secure Smart Power Systems, Security Visualization and Monitoring.Researchers and professionals alike will find the chapters an essential read for further research on the topic.

A Toolset for Intrusion and Insider Threat Detection.- Human-Machine Decision Support Systems for Insider Threat Detection.- Detecting malicious collusions between mobile software applications.- Dynamic Analysis of Malware using Run-Time Opcodes.- Big Data Analytics for Intrusion Detection System: Statistical Decision-making using Finite Dirichlet Mixture Models.- Security of Online Examinations.- Attribute Noise, Classification Technique, and Classification Accuracy.- Learning from Loads: An Intelligent System for Decision Support in Identifying Nodal Load Disturbances of Cyber-Attacks in Smart Power Systems using Gaussian Processes and Fuzzy Inference.- Visualization and Data Provenance Trends in Decision Support for Cybersecurity.

Recenzijos

The book includes many illustrations, some of which are in color; I wish some of these were more readable. The book provides a panoramic view of some emerging data analytics and decision support applications for cybersecurity. (S. V. Nagaraj, Computing Reviews, august, 13, 2018)









Part I Regular
Chapters
A Toolset for Intrusion and Insider Threat Detection
3(30)
Markus Ring
Sarah Wunderlich
Dominik Grudl
Dieter Landes
Andreas Hotho
Human-Machine Decision Support Systems for Insider Threat Detection
33(22)
Philip A. Legg
Detecting Malicious Collusion Between Mobile Software Applications: The Android™ Case
55(44)
Irina Mariuca Asavoae
Jorge Blasco
Thomas M. Chen
Harsha Kumara Kalutarage
Igor Muttik
Hoang Nga Nguyen
Markus Roggenbach
Siraj Ahmed Shaikh
Dynamic Analysis of Malware Using Run-Time Opcodes
99(28)
Domhnall Carlin
Philip O'Kane
Sakir Sezer
Big Data Analytics for Intrusion Detection System: Statistical Decision-Making Using Finite Dirichlet Mixture Models
127(30)
Nour Moustafa
Gideon Creech
Jill Slay
Security of Online Examinations
157(44)
Yousef W. Sabbah
Attribute Noise, Classification Technique, and Classification Accuracy
201(22)
R. Indika
P. Wickramasinghe
Part II Invited
Chapters
Learning from Loads: An Intelligent System for Decision Support in Identifying Nodal Load Disturbances of Cyber-Attacks in Smart Power Systems Using Gaussian Processes and Fuzzy Inference
223(20)
Miltiadis Alamaniotis
Lefteri H. Tsoukalas
Visualization and Data Provenance Trends in Decision Support for Cybersecurity
243
Jeffery Garae
Ryan K.L. Ko